Presentation is loading. Please wait.

Presentation is loading. Please wait.

1 - 1 Dr.T.VENKATAMUNI, M.Tech, Ph.D PROFESSOR & HOD DEPARTMENT OF MECHANICAL ENGINEERING JEPPIAAR INSTITUTE OF TECHNOLOGY.

Published byDoreen Griffith Modified over 8 years ago

Similar presentations

Presentation on theme: "1 - 1 Dr.T.VENKATAMUNI, M.Tech, Ph.D PROFESSOR & HOD DEPARTMENT OF MECHANICAL ENGINEERING JEPPIAAR INSTITUTE OF TECHNOLOGY."— Presentation transcript:

1 1 - 1 Dr.T.VENKATAMUNI, M.Tech, Ph.D PROFESSOR & HOD DEPARTMENT OF MECHANICAL ENGINEERING JEPPIAAR INSTITUTE OF TECHNOLOGY

2 Introduction 9 - 2 Previously considered distributed forces which were proportional to the area or volume over which they act. -The resultant was obtained by summing or integrating over the areas or volumes. -The moment of the resultant about any axis was determined by computing the first moments of the areas or volumes about that axis. Will now consider forces which are proportional to the area or volume over which they act but also vary linearly with distance from a given axis. -It will be shown that the magnitude of the resultant depends on the first moment of the force distribution with respect to the axis. -The point of application of the resultant depends on the second moment of the distribution with respect to the axis. Current chapter will present methods for computing the moments and products of inertia for areas and masses.

3 Moment of Inertia of an Area 9 - 3 Consider distributed forceswhose magnitudes are proportional to the elemental areason which they act and also vary linearly with the distance of from a given axis. Example: Consider a beam subjected to pure bending. Internal forces vary linearly with distance from the neutral axis which passes through the section centroid. Example: Consider the net hydrostatic force on a submerged circular gate.

4 Moment of Inertia of an Area by Integration 9 - 4 Second moments or moments of inertia of an area with respect to the x and y axes, Evaluation of the integrals is simplified by choosing d  to be a thin strip parallel to one of the coordinate axes. For a rectangular area, The formula for rectangular areas may also be applied to strips parallel to the axes,

5 Polar Moment of Inertia 9 - 5 The polar moment of inertia is an important parameter in problems involving torsion of cylindrical shafts and rotations of slabs. The polar moment of inertia is related to the rectangular moments of inertia,

6 Radius of Gyration of an Area 9 - 6 Consider area A with moment of inertia I x. Imagine that the area is concentrated in a thin strip parallel to the x axis with equivalent I x. k x =radius of gyration with respect to the x axis Similarly,

7 Sample Problem 9.1 9 - 7 Determine the moment of inertia of a triangle with respect to its base. SOLUTION: A differential strip parallel to the x axis is chosen for dA. For similar triangles, Integrating dI x from y = 0 to y = h,

8 Sample Problem 2 9 - 8 a)Determine the centroidal polar moment of inertia of a circular area by direct integration. b)Using the result of part a, determine the moment of inertia of a circular area with respect to a diameter. SOLUTION: An annular differential area element is chosen, From symmetry, I x = I y,

9 Parallel Axis Theorem 9 - 9 Consider moment of inertia I of an area A with respect to the axis AA’ The axis BB’ passes through the area centroid and is called a centroidal axis. parallel axis theorem

10 Parallel Axis Theorem 9 - 10 Moment of inertia I T of a circular area with respect to a tangent to the circle, Moment of inertia of a triangle with respect to a centroidal axis,

11 Moments of Inertia of Composite Areas 9 - 11 The moment of inertia of a composite area A about a given axis is obtained by adding the moments of inertia of the component areas A 1, A 2, A 3,..., with respect to the same axis.

12 Moments of Inertia of Composite Areas 9 - 12

13 Sample Problem 4 9 - 13 The strength of a W14x38 rolled steel beam is increased by attaching a plate to its upper flange. Determine the moment of inertia and radius of gyration with respect to an axis which is parallel to the plate and passes through the centroid of the section. SOLUTION: Determine location of the centroid of composite section with respect to a coordinate system with origin at the centroid of the beam section. Apply the parallel axis theorem to determine moments of inertia of beam section and plate with respect to composite section centroidal axis. Calculate the radius of gyration from the moment of inertia of the composite section.

14 Sample Problem 4 9 - 14 SOLUTION: Determine location of the centroid of composite section with respect to a coordinate system with origin at the centroid of the beam section.

15 Sample Problem 4 9 - 15 Apply the parallel axis theorem to determine moments of inertia of beam section and plate with respect to composite section centroidal axis. Calculate the radius of gyration from the moment of inertia of the composite section.

16 Sample Problem 5 9 - 16 Determine the moment of inertia of the shaded area with respect to the x axis. SOLUTION: Compute the moments of inertia of the bounding rectangle and half-circle with respect to the x axis. The moment of inertia of the shaded area is obtained by subtracting the moment of inertia of the half-circle from the moment of inertia of the rectangle.

17 Sample Problem 5 9 - 17 SOLUTION: Compute the moments of inertia of the bounding rectangle and half-circle with respect to the x axis. Rectangle: Half-circle: moment of inertia with respect to AA’, moment of inertia with respect to x’, moment of inertia with respect to x,

18 Sample Problem 9.5 9 - 18 The moment of inertia of the shaded area is obtained by subtracting the moment of inertia of the half-circle from the moment of inertia of the rectangle.

19 Product of Inertia 9 - 19 Product of Inertia: When the x axis, the y axis, or both are an axis of symmetry, the product of inertia is zero. Parallel axis theorem for products of inertia:

20 Principal Axes and Principal Moments of Inertia 9 - 20 Given we wish to determine moments and product of inertia with respect to new axes x’ and y’. The change of axes yields The equations for I x’ and I x’y’ are the parametric equations for a circle, The equations for I y’ and I x’y’ lead to the same circle. Note:

21 Principal Axes and Principal Moments of Inertia 9 - 21 At the points A and B, I x’y’ = 0 and I x’ is a maximum and minimum, respectively. I max and I min are the principal moments of inertia of the area about O. The equation for  m defines two angles, 90 o apart which correspond to the principal axes of the area about O.

22 Sample Problem 9.6 9 - 22 Determine the product of inertia of the right triangle (a) with respect to the x and y axes and (b) with respect to centroidal axes parallel to the x and y axes. SOLUTION: Determine the product of inertia using direct integration with the parallel axis theorem on vertical differential area strips Apply the parallel axis theorem to evaluate the product of inertia with respect to the centroidal axes.

23 Sample Problem 6 9 - 23 SOLUTION: Determine the product of inertia using direct integration with the parallel axis theorem on vertical differential area strips Integrating dI x from x = 0 to x = b,

24 Sample Problem 6 9 - 24 Apply the parallel axis theorem to evaluate the product of inertia with respect to the centroidal axes. With the results from part a,

25 Sample Problem 7 9 - 25 For the section shown, the moments of inertia with respect to the x and y axes are I x = 10.38 in 4 and I y = 6.97 in 4. Determine (a) the orientation of the principal axes of the section about O, and (b) the values of the principal moments of inertia about O. SOLUTION: Compute the product of inertia with respect to the xy axes by dividing the section into three rectangles and applying the parallel axis theorem to each. Determine the orientation of the principal axes (Eq. 9.25) and the principal moments of inertia (Eq. 9. 27).

26 Sample Problem 9.7 9 - 26 SOLUTION: Compute the product of inertia with respect to the xy axes by dividing the section into three rectangles. Apply the parallel axis theorem to each rectangle, Note that the product of inertia with respect to centroidal axes parallel to the xy axes is zero for each rectangle.

27 Sample Problem 7 9 - 27 Determine the orientation of the principal axes (Eq. 9.25) and the principal moments of inertia (Eq. 9. 27).

28 Moment of Inertia of a Mass 9 - 28 Angular acceleration about the axis AA’ of the small mass  m due to the application of a couple is proportional to r 2  m. r 2  m =moment of inertia of the mass  m with respect to the axis AA’ For a body of mass m the resistance to rotation about the axis AA’ is The radius of gyration for a concentrated mass with equivalent mass moment of inertia is

29 Moment of Inertia of a Mass 9 - 29 Moment of inertia with respect to the y coordinate axis is Similarly, for the moment of inertia with respect to the x and z axes, In SI units, In U.S. customary units,

30 Parallel Axis Theorem 9 - 30 For the rectangular axes with origin at O and parallel centroidal axes, Generalizing for any axis AA’ and a parallel centroidal axis,

31 Moments of Inertia of Thin Plates 9 - 31 For a thin plate of uniform thickness t and homogeneous material of density , the mass moment of inertia with respect to axis AA’ contained in the plate is Similarly, for perpendicular axis BB’ which is also contained in the plate, For the axis CC’ which is perpendicular to the plate,

32 Moments of Inertia of Thin Plates 9 - 32 For the principal centroidal axes on a rectangular plate, For centroidal axes on a circular plate,

33 Moments of Inertia of a 3D Body by Integration 9 - 33 Moment of inertia of a homogeneous body is obtained from double or triple integrations of the form For bodies with two planes of symmetry, the moment of inertia may be obtained from a single integration by choosing thin slabs perpendicular to the planes of symmetry for dm. The moment of inertia with respect to a particular axis for a composite body may be obtained by adding the moments of inertia with respect to the same axis of the components.

Download ppt "1 - 1 Dr.T.VENKATAMUNI, M.Tech, Ph.D PROFESSOR & HOD DEPARTMENT OF MECHANICAL ENGINEERING JEPPIAAR INSTITUTE OF TECHNOLOGY."

Similar presentations

Distributed Forces: Centroids and Centers of Gravity

Distributed Forces: Centroids and Centers of Gravity
2E4: SOLIDS & STRUCTURES Lecture 8

2E4: SOLIDS & STRUCTURES Lecture 8
STATIKA STRUKTUR Genap 2012 / 2013 I Made Gatot Karohika ST. MT.

STATIKA STRUKTUR Genap 2012 / 2013 I Made Gatot Karohika ST. MT.
Distributed Forces: Centroids and Centers of Gravity

Distributed Forces: Centroids and Centers of Gravity
APPENDIX A MOMENTS OF AREAS

APPENDIX A MOMENTS OF AREAS
Today’s Objectives: Students will be able to:

Today’s Objectives: Students will be able to:
8.0 SECOND MOMENT OR MOMENT OF INERTIA OF AN AREA

8.0 SECOND MOMENT OR MOMENT OF INERTIA OF AN AREA
Geometrical properties of cross-sections

Geometrical properties of cross-sections
CM 197 Mechanics of Materials Chap 8: Moments of Inertia

CM 197 Mechanics of Materials Chap 8: Moments of Inertia
ENGR-36_Lec-26_Mass_Moment_of_Inertia.pptx 1 Bruce Mayer, PE Engineering-36: Engineering Mechanics - Statics Bruce Mayer, PE Licensed.

ENGR-36_Lec-26_Mass_Moment_of_Inertia.pptx 1 Bruce Mayer, PE Engineering-36: Engineering Mechanics - Statics Bruce Mayer, PE Licensed.
MAE 314 – Solid Mechanics Yun Jing

MAE 314 – Solid Mechanics Yun Jing
ME 221Lecture 191 ME 221 Statics Lecture #19 Sections 9.1 - 9.6 Exam #2 Review.

ME 221Lecture 191 ME 221 Statics Lecture #19 Sections Exam #2 Review.
ME 221Lecture 171 ME 221 Statics Lecture #19 Sections 9.1 - 9.6 Exam #2 Review.

ME 221Lecture 171 ME 221 Statics Lecture #19 Sections Exam #2 Review.
EGR 280 Mechanics 15 – Mass Moments of Inertia. Mass Moment of Inertia The resistance of a body to changes in angular acceleration is described by the.

EGR 280 Mechanics 15 – Mass Moments of Inertia. Mass Moment of Inertia The resistance of a body to changes in angular acceleration is described by the.
King Fahd University of Petroleum & Minerals

King Fahd University of Petroleum & Minerals
ME 221Lecture 181 ME 221 Statics Lecture #18 Sections 9.1 – 9.6.

ME 221Lecture 181 ME 221 Statics Lecture #18 Sections 9.1 – 9.6.
CTC / MTC 222 Strength of Materials

CTC / MTC 222 Strength of Materials
Distributed Forces: Centroids and Centers of Gravity

Distributed Forces: Centroids and Centers of Gravity
Chapter 6: Center of Gravity and Centroid

Chapter 6: Center of Gravity and Centroid
Licensed Electrical & Mechanical Engineer

Licensed Electrical & Mechanical Engineer

Similar presentations

Ads by Google